Muscles in the diaphragm and intercostal muscles help to inhale the air needed to blow up a balloon. The muscles in the cheeks and lips are used to create the necessary pressure to blow the air into the balloon. Additionally, the abdominal muscles can be engaged to provide extra force when exhaling.
To calculate the acceleration of the balloon moving towards or away from the other balloon, we would need more information, such as the force between the two balloons or the distance between them. The acceleration would be determined by the net force acting on the balloon, according to Newton's second law (F = ma).
The balloon would have a greater acceleration because it has less mass compared to the volleyball. According to Newton's second law (F = ma), with the same force applied, an object with less mass will have a greater acceleration.
To find the initial acceleration of the balloon, we need to consider the forces acting on it. The initial acceleration can be calculated using Newton's second law: ΣF = ma. The buoyant force acting on the balloon is equal to the weight of the air displaced, given by ρ * g * V, where ρ is the air density, g is the acceleration due to gravity, and V is the volume of the balloon. The net force on the balloon can then be determined, and divided by the total mass of the balloon to find the acceleration.
The mechanical advantage (MA) of a lever is calculated by dividing the input arm length by the output arm length. In this case, the MA would be 36cm (input arm) divided by 6cm (output arm), resulting in a MA of 6.
The force on Darren while throwing the toolkit is generated by the muscles in his arm pushing the toolkit forward. His acceleration is determined by the force applied to the toolkit divided by his mass, as described by Newton's second law (F = ma).
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Heating the air increases air velocity, and thus accelerating the air and lifting the balloon, f=ma.
Yes, it would actually be a little heftier power supply as to how much amperage it could draw without blowing out the internal fuse.
A balloon typically has greater acceleration than a volleyball when both are pushed with the same force. This is because the balloon has a much lower mass than the volleyball, according to Newton's second law of motion (F = ma). Since acceleration is inversely proportional to mass when force is constant, the lighter balloon will accelerate more.
To calculate the acceleration of the balloon moving towards or away from the other balloon, we would need more information, such as the force between the two balloons or the distance between them. The acceleration would be determined by the net force acting on the balloon, according to Newton's second law (F = ma).
The balloon would have a greater acceleration because it has less mass compared to the volleyball. According to Newton's second law (F = ma), with the same force applied, an object with less mass will have a greater acceleration.
Fb=density(air)*g*Volume(balloon)=1.225*9.81*0.0265=0.3184 N (work up) W(balloon)=0.007*9.81=0.06867 N (work down) net force F =ma=Fb-W(balloon)=0.3184 - 0.06867 =0.24973 a=0.24973/m(0.007) = 35.675 m/s2
To find the initial acceleration of the balloon, we need to consider the forces acting on it. The initial acceleration can be calculated using Newton's second law: ΣF = ma. The buoyant force acting on the balloon is equal to the weight of the air displaced, given by ρ * g * V, where ρ is the air density, g is the acceleration due to gravity, and V is the volume of the balloon. The net force on the balloon can then be determined, and divided by the total mass of the balloon to find the acceleration.
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Ma-Ma-Ma Belle was created in 1973.
Ma-ma was created in 1976.
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